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What is the CFG of the complement of L={ww|w belongs to {0,1}*}?

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Call me skeptical, but I have the impression you want us to do your homework for you. Please feel free to remove the tag if it's not the case though. –  phooji Mar 28 '11 at 2:54
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@phooji: Yes it's homework. I think 5am is a good time to admit failure and seek help. –  Uri Mar 28 '11 at 2:56
    
Start asking such questions on CSTheory –  bludger Jul 16 '12 at 19:05
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1 Answer

up vote 7 down vote accepted

First of all observe the fact that any odd word is part of the language. Let's define the following languages:

L1={w1w|w{0,1}*}, L0={w0w|w{0,1}*}.


These languages can be defined with the following CFG:

S0/1 -> |0S0|1S1|0S1|1S0


Now look at L3:

L3=(L1)U(L2)U(L1L2)U(L2L1)


It is context free from closure to union and concatenation.
Let's prove that L3 is the language we're looking for. First of all as we have seen it deals with all possible odd length words. As for the even length words, if they are in the language, there is one pair of terminals, at least, which is different on both sides of the word. Call this pair a and b. Every even word can be divided like this:

(x_1^m)(a)(x_2^m)(y_1^n)(b)(y_2^n)


and this is exactly

(L1L2)U(L2L1)


This implies that CFG languages are not closed under complement.

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